Esculetin Inhibits VEGF-Induced Angiogenesis Both In Vitro and In Vivo

被引:34
作者
Park, Sung Lyea [1 ]
Won, Se Yeon [1 ]
Song, Jun-Hui [1 ]
Lee, Sook-Young [1 ]
Kim, Wun-Jae [2 ]
Moon, Sung-Kwon [1 ]
机构
[1] Chung Ang Univ, Dept Food & Nutr, Anseong 456756, South Korea
[2] Chungbuk Natl Univ, Dept Urol, Personalized Tumor Engn Res Ctr, Cheongju 361763, South Korea
来源
AMERICAN JOURNAL OF CHINESE MEDICINE | 2016年 / 44卷 / 01期
基金
新加坡国家研究基金会;
关键词
Esculetin; Angiogenesis; HUVECs; VEGF; ENDOTHELIAL GROWTH-FACTOR; COLON-CANCER CELLS; TUMOR ANGIOGENESIS; PROTEIN EXPRESSION; PROLIFERATION; ACTIVATION; CYCLE; AKT; PROGRESSION; MECHANISMS;
D O I
10.1142/S0192415X1650004X
中图分类号
R [医药、卫生];
学科分类号
10 ;
摘要
Esculetin is known to inhibit tumor growth, but its effect in angiogenesis has not been studied. Here, we report the efficacy of esculetin on VEGF-induced angiogenesis. Esculetin treatment inhibited VEGF-induced proliferation and DNA synthesis of HUVECs with no cell toxicity. G1-phase cell-cycle arrest was associated with a decreased expression of cyclins and CDKs via the binding of p27KIP1. Esculetin down-regulated the MMP-2 expression in VEGF-stimulated HUVECs, which suppressed colony tube formation and migration. Esculetin reduced the phosphorylation of VEGFR-2 and the downstream signaling of VEGFR-2, including ERK1/2 and eNOS/Akt pathways. Esculetin suppressed microvessel outgrowth from an aortic ring ex vivo model treated with VEGF, and blocked the VEGF-induced formation of new blood vessels and hemoglobin content in an in vivo Matrigel plug model. Collectively, VEGF-stimulated responses in angiogenesis were inhibited in vitro and in vivo, providing a theoretical basis for effective use against antiangiogenic therapies.
引用
收藏
页码:61 / 76
页数:16
相关论文
共 25 条
[1]   Fisetin inhibits various attributes of angiogenesis in vitro and in vivo-implications for angioprevention [J].
Bhat, Tariq A. ;
Nambiar, Dhanya ;
Pal, Arttatrana ;
Agarwal, Rajesh ;
Singh, Rana P. .
CARCINOGENESIS, 2012, 33 (02) :385-393
[2]   Molecular mechanisms of blood vessel formation [J].
Bussolino, F ;
Mantovani, A ;
Persico, G .
TRENDS IN BIOCHEMICAL SCIENCES, 1997, 22 (07) :251-256
[3]   Activation of nitric oxide synthase in endothelial cells by Akt-dependent phosphorylation [J].
Dimmeler, S ;
Fleming, I ;
Fisslthaler, B ;
Hermann, C ;
Busse, R ;
Zeiher, AM .
NATURE, 1999, 399 (6736) :601-605
[4]   Modulation of VEGF-induced endothelial cell cycle protein expression through cyclic AMP hydrolysis by PDE2 and PDE4 [J].
Favot, L ;
Keravis, T ;
Lugnier, C .
THROMBOSIS AND HAEMOSTASIS, 2004, 92 (03) :634-645
[5]   Vascular endothelial growth factor: Basic science and clinical progress [J].
Ferrara, N .
ENDOCRINE REVIEWS, 2004, 25 (04) :581-611
[6]  
FOLKMAN J, 1971, NEW ENGL J MED, V285, P1182
[7]   Regulation of endothelium-derived nitric oxide production by the protein kinase Akt [J].
Fulton, D ;
Gratton, JP ;
McCabe, TJ ;
Fontana, J ;
Fujio, Y ;
Walsh, K ;
Franke, TF ;
Papapetropoulos, A ;
Sessa, WC .
NATURE, 1999, 399 (6736) :597-601
[8]  
Genersch E, 2000, J CELL SCI, V113, P4319
[9]   Vascular endothelial growth factor regulates endothelial cell survival through the phosphatidylinositol 3′-kinase Akt signal transduction pathway -: Requirement for Flk-1/KDR activation [J].
Gerber, HP ;
McMurtrey, A ;
Kowalski, J ;
Yan, MH ;
Keyt, BA ;
Dixit, V ;
Ferrara, N .
JOURNAL OF BIOLOGICAL CHEMISTRY, 1998, 273 (46) :30336-30343
[10]   Patterns and emerging mechanisms of the angiogenic switch during tumorigenesis [J].
Hanahan, D ;
Folkman, J .
CELL, 1996, 86 (03) :353-364